CLAIM OF PRIORITY
TECHNICAL FIELD
[0002] This instant specification relates to electrical devices for limiting inrush currents
and for providing safety shutdown functionality.
BACKGROUND
[0003] Electrical motors are used in a wide variety of commercial and industrial settings.
Because of their varied use, electrical motors and associated motor control devices
often operate in situations where their operations are critical for safety and/or
system operation reasons. Electrical motors in such environments are commonly used
to drive and/or position mechanical devices.
[0004] Electrical motors may be used in a wide variety of applications, including use with
valve positioners and the like. During startup, alternating current electrical motors
may momentarily draw current flows that are several times their normal operational
currents. Electric motors are often coupled to capacitive voltage reserves to provide
additional current flows during startup, but these capacitors can also draw large
amounts of current while charging to their rated capacities.
[0005] US 5,944,635 describes a motorized exercise apparatus energized by a power source. An electronically
commutated motor drives the exercise apparatus. A commutation switch selectively connects
the power source to the motor and conducts a switch current when the power supply
is connected to the motor. A safety shutdown switch responds to a safety shutdown
signal. The safety shutdown switch has a first mode wherein the power source is connected
to the motor, and a second mode wherein the power source is disconnected from the
motor. A threshold circuit associated with the commutation switch generates a switch
current signal representative of switch current. The threshold circuit comprises a
threshold detector responsive to the switch current signal for generating the safety
shutdown signal and placing and maintaining the safety shutdown switch in the second
mode when the switch current signal indicates the switch current is above a threshold.
[0006] US 4,910,447 describes a pulse width modulation control circuit that includes a pulse width modulator
which supplies a signal to a power switch tying together a d.c. signal generator and
a motor and various sensing circuit including a control voltage disabler circuit,
a motor voltage and current feedback circuit, and a low control voltage disabler circuit.
[0007] During operation of a system including motor, unsafe operating conditions may arise,
such as a temperature or pressure exceeding safe operating limits. In such instances,
it may be desirable to shut down the motor, which typically includes transitioning
the electric motor into a safe state and removing power from the electrical components.
SUMMARY
[0008] In general, this document electrical devices for limiting inrush currents and for
providing safety shutdown functionality.
[0009] In a first aspect, a current control assembly includes an electrical current flow
path having a maximum current flow rate, a first current limiter in the electrical
current flow path, the first current limiter comprising circuitry configured to adjustably
restrict current flow along the electrical current flow path to a flow rate less than
the maximum current flow rate in response to receipt of a first signal at a first
input port, and a second current limiter in the electrical current flow path, the
second current limiter arranged to interrupt the electrical current flow path in response
to receipt of a second signal at a second input port.
[0010] Various implementations can includes some, all, or none of the following features.
The first current limiter can be further configured to, in response to a first state
of the first signal, interrupt current flow along the current flow path, and in response
to a second state of the first signal begin a soft start time period, restrict flow
along the current flow path to a restricted rate greater than zero current flow and
less than the maximum current flow rate for the duration of the soft start time period,
and permit current flow along the current flow path at an unrestricted rate upon expiration
of the soft start time. The first current limiter can be further configured to, in
response to a first state of the first signal, interrupt current flow along the current
flow path, and in response to a second state of the first signal begin a soft start
time period having a start time and an end time, restrict current flow along the current
flow path to a variable restricted flow rate ranging from about zero current flow
at the start time to an unrestricted rate at the end time. The second signal can be
the first signal. At least one of the first current limiter and the second current
limiter can include a current limiting component in the current flow path and can
be selected from one of a field effect transistor, an insulated gate bipolar transistor,
or a relay. The first current limiter can be a field effect transistor and the second
current limiter can be a field effect transistor.
[0011] In a second aspect, a motor control system with a soft-start capability includes
an electrical current flow path having a maximum current flow rate, an electrical
input configured to connect an input voltage to the electrical current flow path,
a voltage storage assembly in the current flow path, a current control assembly in
the electrical current flow path. The current control assembly includes a first current
limiter in the electrical current flow path, the first current limiter comprising
circuitry configured to adjustably restrict current flow along the electrical current
flow path to a flow rate less than the maximum current flow rate in response to receipt
of a first signal at a first input port, and a second current limiter in the electrical
current flow path, the second current limiter arranged interrupt the electrical current
flow path in to receipt of a second signal at a second input port, a motor controller
arranged to receive electrical power from the voltage storage assembly, and a motor
configured to be controlled by the motor controller.
[0012] Various implementations can include some, all, or none of the following features.
The first current limiter can be further configured to, in response to a first state
of the first signal, interrupt current flow along the current flow path, and in response
to a second state of the first signal begin a soft start time period, restrict flow
along the current flow path to a restricted rate greater than zero current flow and
less than the maximum current flow rate for the duration of the soft start time period,
and permit current flow along the current flow path at an unrestricted rate upon expiration
of the soft start time. The first current limiter can be further configured to, in
response to a first state of the first signal, interrupt current flow along the current
flow path, and in response to a second state of the first signal begin a soft start
time period having a start time and an end time, restrict current flow along the current
flow path to a variable restricted flow rate ranging from about zero current flow
at the start time to an unrestricted rate at the end time. The second signal can be
the first signal. At least one of the first current limiter and the second current
limiter can be a current limiting component in the current flow path and can be selected
from one of a field effect transistor, an insulated gate bipolar transistor, or a
relay. The first current limiter can be a field effect transistor and the second current
limiter can be a field effect transistor.
[0013] In a third aspect, a method for soft-starting an electrical current-consuming apparatus
includes providing a motor control system. The motor control system includes a current
control assembly in an electrical current flow path, the current control assembly
including a first current limiter in the electrical current flow path, the first current
limiter comprising circuitry configured to adjustably restrict current flow along
the electrical current flow path between an electrical input and a voltage storage
assembly, and a first input port, and a second current limiter in the electrical current
flow path, the second current limiter arranged to interrupt the electrical current
flow path, and a second input port. The method also includes resisting, by the first
current limiter and the second current limiter, current flow in the current flow path,
receiving a first signal at the first input port, receiving a second signal at the
second input port, permitting, by the second current limiter in response to the second
signal, current flow in the current flow path, and adjustably restricting, by the
first current limiter in response to the first signal, current flow along the electrical
current flow path.
[0014] Various implementations can include some, all, or none of the following features.
The method can also include interrupting, in response to a first state of the first
signal, current flow along the current flow path, beginning, in response to a second
state of the first signal, a soft start time period, restricting, for the duration
of the soft start time period, flow along the current flow path to a restricted rate
greater than zero current flow and less than the maximum current flow rate, and permitting,
upon expiration of the soft start time, current flow along the current flow path at
an unrestricted rate. The method can also include interrupting, in response to a first
state of the first signal, current flow along the current flow path, beginning, in
response to a second state of the first signal, a soft start time period having a
start time and an end time, restricting, at the start time, current flow along the
current flow path to about zero current flow, and increasing, during the soft start
period, current flow along the current flow path from about zero current flow to an
unrestricted rate at the end time. The second signal can be the first signal. At least
one of the first current limiter and the second current limiter can be a current limiting
component in the current flow path and can be selected from one of a field effect
transistor, an insulated gate bipolar transistor, or a relay. The first current limiter
can be a field effect transistor and the second current limiter can be a field effect
transistor.
[0015] The systems and techniques described here may provide one or more of the following
advantages. First, a system can provide soft start and safety shutdown functions in
a reduced size. Second, the system can provide soft start and safety shutdown functions
with a reduced cost. Third, the system can provide soft start and safety shutdown
functions using fewer components, providing an associated improvement in reliability.
Fourth, the system can provide a simplified implementation of a high availability
safety shutdown.
[0016] The details of one or more implementations are set forth in the accompanying drawings
and the description below. Other features and advantages will be apparent from the
description and drawings, and from the claims.
DESCRIPTION OF DRAWINGS
[0017]
FIG. 1 is a schematic diagram that shows an example of a system with an integrated
safety shutdown and soft-start module.
FIG. 2 is a flow diagram of an example process for providing integrated safety shutdown
and soft-start operations.
DETAILED DESCRIPTION
[0018] This document describes systems and techniques for providing an integrated electrical
soft-start and safety interrupt apparatus. In general, soft start, or inrush current
limiting, is a desirable feature for use with electric motor drives or other electrical
loads. On initial application of power, internal energy storage capacitors can draw
a very high level of inrush or surge current. Without soft-start functionality, the
power distribution systems providing power to such motors would generally be sized
to handle the inrush of a single or sometimes multiple devices at the same time. Inrush
currents can also place stress upon motor drive power components. Generally speaking,
soft start or inrush limiter circuits limit the initial current until the capacitors
are charged.
[0019] Another feature that is becoming more commonly required in industrial applications
is a certified safety shutdown mechanism according to a functional safety standard
such as S+ IEC 61508 edition 2.0 Commented version (
2010-04), "Functional safety of electrical/electronic/programmable electronic safety-related
systems," published by the International Electrotechnical Commission. In general, a safety shutdown function apparatus responds to an external trip signal
by removing power to the motor or other load, and allowing an actuator to close under
another source of energy, such as a spring. Functional safety standards, such as the
aforementioned IEC 61508 standard, require that the safety function (shutdown) have
proven independence from the rest of the circuitry. In some implementations, such
a requirement may be in place so the safety function has very high availability in
the presence of other possible failures.
[0020] FIG. 1 is a schematic diagram that shows an example of a system 100 with an example
integrated safety shutdown and soft-start module 110. In general, the module 110 integrates
soft-start and safety shutdown functions, which in previous applications are implemented
as separate circuits, into a single apparatus that can provide both a soft-start and
a safety shutdown feature.
[0021] The module 110 includes a current limiter 112 in a current path 120. The current
limiter 112 adjustably limits current flow in response to an input signal 130 provided
to an input port 113 of a soft-start module 115. The soft start module 115 includes
electrical circuitry that controls the amount of current limiting provided by the
current limiter 112. When the input signal 130 is in a first state, e.g., "on", the
soft start module 115 adjusts the current limiting of the current limiter 112 to a
soft start flow that is greater than zero flow and less than a substantially unrestricted
flow. When the input signal 130 is in a second state, e.g., "off, the soft start module
115 adjusts the current limiting of the current limiter 112 to substantially stop
current flow along the current path 120.
[0022] In some embodiments, the soft start module 115 can also include timing circuitry,
and the soft start module 115 can control the current limiter 112 to allow the soft
start flow for a soft start time period that starts when the first state of the input
signal is received, and adjusts the current limiter 112 to permit a substantially
unrestricted flow after the soft start time period expires. In some embodiments, the
soft start module 115 can be passive electronic circuitry. For example, the soft start
module 115 can be an RL, RC, or RLC circuit, the components of which are selected
to provide a predetermined timing and control behavior to the current limiter 122.
[0023] The module 110 includes a current limiter 114 in the current path 120. The current
limiter 114 is configured to controllably interrupt current flow in response to an
input signal 132 provided to an input port 117. In some implementations, the current
limiter 114 can be a relay or other form of switch device. When the input signal 132
is in a first state, e.g., "on", the current limiter 114 permits a substantially unrestricted
flow along the current path 120. When the input signal 132 is in a second state, e.g.,
"off", the current limiter 114 substantially stops, or completely stops, current flow
along the current path 120.
[0024] In some embodiments, the current limiter 112 and/or the current limiter 114 can be
electromechanical switches, relays, transistors, insulated gate bipolar transistors
(IGBT), field effect transistors (FET), metal-oxide FETs (MOSFET), or combinations
of these and/or other appropriate mechanical, electrical, or electromechanical current
limiting devices. In some embodiments, the current limiter 112 and the current limiter
114 can implement the same type of current limiting devices.
[0025] In operation, input voltage 122 in the implementation shown in FIG. 1 is provided
to an electromagnetic interference (EMI) filter 140. The EMI filter 140 provides filtered
input voltage to the current path 120, which flows to the current limiter 112. The
current limiter 112 adjustably limits current flow to the current limiter 114, and
the current limiter 114 is configured to selectably interrupt current flow along the
current path 120 to a bulk storage module 142. The bulk storage module 142 stores
electrical power that is provided to an inverter 144. In some embodiments, the bulk
storage module 142 can be a capacitor or a capacitor bank. The inverter 144 provides
power and control for the operation of an electrical motor or other power-consuming
load.
[0026] In connection with the implementation shown in FIG. 1, a safety shutdown signal 150
indicates a request for a shutdown of current flow along the current path 120 to the
motor or other load. For example parameters such as voltage, current, temperature,
vibration, lubricant supply, emergency stop (e.g., panic button) status, and/or combinations
of these and other appropriate measurements can be monitored at a monitoring system
(not shown) to determine if a safety shutdown is needed. If so, the safety shutdown
signal 150 can be provided to a trip drive 146. In some implementations, the safety
shutdown signal 150 can indicate the need for a safety shutdown as a positive signal
(e.g., presence of a voltage triggers the shutdown), as a negative signal (e.g., presence
of a voltage indicates normal operation and absence of the voltage triggers the shutdown),
or as any other appropriate analog or digital signal that can indicate a need for
the shutdown and no need for the shutdown.
[0027] As shown in the implementation of FIG. 1, the trip drive module 146 converts the
safety shutdown signal 150 to the input signals 130 and 132. For example, the safety
shutdown signal 150 can be a digital signal, and the input signals 130 and/or 132
can be analog signals. In another example, the safety shutdown signal 150 can be a
first voltage, and the input signals 130 and/or 132 can be provided at another voltage
that is compatible with the inputs 113 and/or 117. In some implementations, the input
signals 130 and 132 can be a common signal that is provided to both of the inputs
113 and 117.
[0028] As shown in the implementation of FIG. 1, an isolation barrier 147 electrically isolates
the integrated safety shutdown and soft-start module 110 from components that provide
the safety shutdown signal 150. In some embodiments, the isolation barrier can be
a transformer included as part of the trip drive module 146. In some embodiments,
the isolation barrier can be an optoisolator included as part of the trip drive module
146. In some embodiments, the isolation barrier 147 can be selected to satisfy requirements
of a safety standard specification, such as the aforementioned IEC 61508 standard.
[0029] During normal, or "steady-state" operations, e.g., not at startup and no safety shutdown
is requested, the input signals 130 and 132 cause the current limiters 112 and 114
to provide little to no current limiting along the current path 120. In such a configuration,
the input voltage 122 and the currents associated with it are conducted to the bulk
storage module 142 with substantially no interference from the integrated safety shutdown
and soft-start module 110.
[0030] When a safety shutdown is requested, the safety shutdown signal 150 is provided to
the trip drive module 146, which responds by providing the input signals 130 and 132
in states that cause the current limiters 112 and 114 to substantially block current
flow along the current path 120. Even if one of the current limiters 112 and 114 were
to fail to open, it is likely that the other will remain operational and halt the
current flow. As such, the current limiters 112 and 114 provide a redundant and highly
available current interruption capability. In some embodiments, the current limiters
112 and 114 can be selected and configured to satisfy the redundancy and high-availability
requirements of a safety standard specification, such as the aforementioned IEC 61508
standard. In some embodiments, during a safety shutdown, the inverter 144 may drain
the electrical power stored in the bulk storage module 142.
[0031] At startup, such as when the system 100 is first powered up or after the conditions
that caused a prior safety shutdown to be cleared, the bulk storage module 142 may
be substantially discharged. Upon application of the input voltage 122 and without
the integrated safety shutdown and soft-start module 110 in place, large and potentially
damaging inrush currents may be consumed by the bulk storage module 142. The integrated
safety shutdown and soft-start module 110 limits these startup currents during a startup
period having a predetermined length of time, such as 1s, 5s, 10s, or appropriate
multiples or fractions thereof. During the start of the startup period, the soft start
module 115 provides a predetermined, limited current flow that is greater than zero,
but less than the rated current carrying capacity of the current path 120 or components
connected along the path 120. In some embodiments, the soft start module 115 may controllably
increase current flow during the startup period. For example, the current limiter
112 may be configured to permit nearly zero current flow at the start of the startup
period, and gradually increase the current flow in proportion to the duration of the
startup period at the end of which the current flow will be substantially unimpeded
by the current limiter 122. For another example, the soft start module 115 may vary
the current flow based on the current demands of other components within, or outside
of, the system 100.
[0032] In the example of system 100, the current limiters 112 and 114 are the only controllable
current-limiting devices along the current path 120, and are used to provide both
a highly-available safety shutdown function and a soft start function for the current
path 120. As such, the integrated safety shutdown and soft-start module 110 is capable
of providing both a highly-available safety shutdown function and a soft start function
in an integrated package while using only the two current limiters 112 and 114.
[0033] FIG. 2 is a flow diagram of an example process 200 for providing integrated safety
shutdown and soft-start operations. In some implementations, the process 200 can be
performed by the example integrated safety shutdown and soft-start module 110 and
the example system 100 of FIG. 1.
[0034] The process 200 begins when a motor control system is provided (202). The motor control
system includes a current control assembly, such as the integrated safety shutdown
and soft-start module 110, in an electrical current flow path, such as the current
path 120. The current control assembly includes a first current limiter, such as the
current limiter 112, in the electrical current flow path and including circuitry configured
to adjustably restrict current flow along the electrical current flow path between
an electrical input such as the input voltage 122 and a voltage storage assembly such
as the bulk storage module 142, and a first input port such as the input port 113.
The current control assembly also includes a second input port, such as the input
port 117, and a second current limiter, such as the current limiter 114, in the electrical
current flow path and arranged to interrupt the electrical current flow path. Current
flow is resisted (204) by at least one of the current limiters. In some embodiments,
the functions of the first and second current limiters may be performed by a single
current limiter.
[0035] A first signal, such as the input signal 130, is received (206) at the first input
port, such as input port 113. A second signal, such as the input signal 132, is received
(208) at the second input port, such as input port 117. In response to the second
signal, the second current limiter permits (210) current flow in the current flow
path. For example, the current limiter 114 can permit current flow in response to
the input signal 132.
[0036] In response to the first signal, such as input signal 130, the first current limiter,
such as current limiter 112, adjustably restricts (212) current flow in the current
flow path. For example, soft start module 115 can configure the current limiter 112
to restrict current flow to rate that is greater than zero flow and less than a substantially
unimpeded current flow along the current path 120. In some embodiments, the current
limiter 112 can provide the adjustable restriction during a predetermined startup
period.
[0037] The current limiters then permit (214) current flow at a substantially unrestricted
rate. For example, the soft start module 115 can control the current limiter 112 to
provide substantially zero restriction after the startup period has expired.
[0038] In some implementations, the process of adjustably restricting (212) current flow
can be performed according to an optional sub-process 220. At the start of the sub-process
220, a soft start time period having a start time and a predetermined end time is
started. For example, the inrush period may be determined to be the amount of time
needed to charge the bulk storage module 142 to capacity, based on the capacity, the
input voltage 122, and the restriction (e.g., impedance) provided by the current limiter
112. In some embodiments, the inrush period may be determined based on a timing relationship
between the input signals 130 and 132. For example, there may be a delay between the
input signal 130 and 132, in no particular order, and the inrush period may be made
proportional to the delay.
[0039] At the start of the start time, the soft start module 115 configures the first current
limiter to restrict (224) current flow to about zero flow. The soft start module 115
then configures the first current limiter to increase (226) current flow along the
current path.
[0040] If it is determined (228) that the end of the soft start period has not been reached,
then current flow is increased (226) again. In some implementations, a delay period
may be allowed to expire before the determination (228) is tested again. If it is
determined (228) that the end of the soft start period has been reached, then the
first current limiter is configured to permit (214) current flow along the current
flow path at a substantially unrestricted rate upon expiration of the soft start time
period.
[0041] In some embodiments, the soft start period may be variable based on the charging
state of the bulk storage module 142. For example, the current limiter 112 may be
adjusted based on a differential voltage that exists between the input voltage 122
and the charging state of the bulk storage module 142. In such an example, the current
limiter 112 may be highly restrictive when the voltage difference, and therefore the
maximum current, are at their greatest, and limit inrush current to a predetermined
level. As the bulk storage module 142 charges and the voltage difference decreases,
the current limiter 112 may be adjusted to provide a proportionally reduced amount
of restriction that limits current to the predetermined level. When the voltage difference
is at or near zero, the inrush period may be determined as being over and the current
limiter 112 can be configured to permit substantially zero restriction along the current
path 120.
[0042] Although a few implementations have been described in detail above, other modifications
are possible. For example, the logic flows do not require the particular order shown,
or sequential order, to achieve desirable results. In addition, other steps may be
provided, or steps may be eliminated, from described flows, and other components may
be added to, or removed from, the described systems. Accordingly, other implementations
are within the scope of the following claims.
1. A current control assembly that provides an integrated electrical soft-start and safety
interrupt apparatus, the current control assembly comprising:
an electrical current flow path (120) having a maximum current flow rate;
a first current limiter (112) in the electrical current flow path (120), the first
current limiter (112) comprising circuitry configured to adjustably restrict current
flow along the electrical current flow path (120) to a flow rate less than the maximum
current flow rate in response to receipt of a first signal (130) at a first input
port (113); and
a second current limiter (114) in the electrical current flow path (120), the second
current limiter (114) arranged to interrupt the electrical current flow path in response
to receipt of a second signal (132) at a second input port (117).
2. The current control assembly of claim 1, wherein the first current limiter is further
configured to:
in response to a first state of the first signal, interrupt current flow along the
current flow path; and
in response to a second state of the first signal:
begin a soft start time period;
restrict flow along the current flow path to a restricted rate greater than zero current
flow and less than the maximum current flow rate for the duration of the soft start
time period; and,
permit current flow along the current flow path at an unrestricted rate upon expiration
of the soft start time.
3. The current control assembly of claim 1, wherein the first current limiter is further
configured to:
in response to a first state of the first signal, interrupt current flow along the
current flow path; and
in response to a second state of the first signal:
begin a soft start time period having a start time and an end time;
restrict current flow along the current flow path to a variable restricted flow rate
ranging from about zero current flow at the start time to an unrestricted rate at
the end time.
4. The current control assembly of any one of claims 1 to 3, wherein the second signal
is the first signal.
5. The current control assembly of any one of claims 1 to 4, wherein at least one of
the first current limiter and the second current limiter comprise a current limiting
component in the current flow path and is selected from one of a field effect transistor,
an insulated gate bipolar transistor, or a relay.
6. The current control assembly of any one of claims 1 to 5, wherein the first current
limiter comprises a field effect transistor and the second current limiter comprises
a field effect transistor.
7. A motor control system with a soft-start capability, comprising:
a current control assembly according to any one of claims 1 to 6;
an electrical input, configured to connect an input voltage to the electrical current
flow path;
a voltage storage assembly (142) in the current flow path;
a motor controller arranged to receive electrical power from the voltage storage assembly;
and
a motor configured to be controlled by the motor controller.
8. A method for soft-starting an electrical current-consuming apparatus, the method comprising:
providing a motor control system comprising:
a current control assembly that provides an integrated electrical soft-start and safety
interrupt apparatus in an electrical current flow path (120), the current control
assembly comprising:
a first current limiter (112) in the electrical current flow path (120), the first
current limiter (112) comprising circuitry configured to adjustably restrict current
flow along the electrical current flow path (120) between an electrical input and
a voltage storage assembly (142), and a first input port (113); and
a second current limiter (114) in the electrical current flow path (120), the second
current limiter (114) arranged to interrupt the electrical current flow path (120),
and a second input port (117);
resisting, by the first current limiter (112) and the second current limiter (114),
current flow in the current flow path;
receiving a first signal (130) at the first input port (113);
receiving a second signal (132) at the second input port (117);
permitting, by the second current limiter (114) in response to the second signal (132),
current flow in the current flow path (120); and,
adjustably restricting, by the first current limiter (112) in response to the first
signal (130), current flow along the electrical current flow path (120).
9. The method of claim 8, further comprising:
interrupting, in response to a first state of the first signal, current flow along
the current flow path;
beginning, in response to a second state of the first signal, a soft start time period;
restricting, for the duration of the soft start time period, flow along the current
flow path to a restricted rate greater than zero current flow and less than the maximum
current flow rate; and,
permitting, upon expiration of the soft start time, current flow along the current
flow path at an unrestricted rate.
10. The method of claim 8, further comprising:
interrupting, in response to a first state of the first signal, current flow along
the current flow path;
beginning, in response to a second state of the first signal, a soft start time period
having a start time and an end time;
restricting, at the start time, current flow along the current flow path to about
zero current flow; and,
increasing, during the soft start period, current flow along the current flow path
from about zero current flow to an unrestricted rate at the end time.
11. The method of any one of claims 8 to 10, wherein the second signal is the first signal.
12. The method of any one of claims 8 to 11, wherein at least one of the first current
limiter and the second current limiter comprise a current limiting component in the
current flow path and is selected from one of a field effect transistor, an insulated
gate bipolar transistor, or a relay.
13. The method of any one of claims 8 to 12, wherein the first current limiter comprises
a field effect transistor and the second current limiter comprises a field effect
transistor.
1. Stromsteueranordnung, die eine integrierte elektrische Sanftstart- und Sicherheitsunterbrechungsvorrichtung
bereitstellt, wobei die Stromsteueranordnung umfasst:
einen elektrischen Stromflussweg (120), der eine maximale Stromflussgeschwindigkeit
aufweist;
einen ersten Strombegrenzer (112) in dem elektrischen Stromflussweg (120), wobei der
erste Strombegrenzer (112) eine Schaltung umfasst, die konfiguriert ist, um als Reaktion
auf einen Empfang eines ersten Signals (130) an einem ersten Eingangsanschluss (113)
den Stromfluss entlang des elektrischen Stromflusswegs (120) auf eine Strömungsgeschwindigkeit
verstellbaren zu beschränken, die geringer als die maximale Strömungsgeschwindigkeit
ist; und
einen zweiten Strombegrenzer (114) in dem elektrischen Stromflussweg (120), wobei
der zweite Strombegrenzer (114) geeignet ist, den elektrischen Stromflussweg als Reaktion
auf einen Empfang eines zweiten Signals (132) an einem zweiten Eingangsanschluss (117)
zu unterbrechen.
2. Stromsteueranordnung nach Anspruch 1, wobei der erste Strombegrenzer außerdem konfiguriert
ist zum:
Unterbrechen des Stromflusses entlang des Stromflusswegs als Reaktion auf einen ersten
Zustand des ersten Signals; und
als Reaktion auf einen zweiten Zustand des ersten Signals:
Beginnen eines Sanftstartzeitraums,
Einschränken des Stromflusses entlang des Stromflusswegs während der Dauer des Sanftstartzeitraums
auf eine einzuschränkende Geschwindigkeit, die größer als ein Nullstromfluss und kleiner
als die maximale Stromflussgeschwindigkeit ist; und
Erlauben des Stromflusses entlang des Stromflusswegs mit einer uneingeschränkten Geschwindigkeit
nach dem Ablauf der Sanftstartzeit.
3. Stromsteueranordnung nach Anspruch 1, wobei der erste Strombegrenzer außerdem konfiguriert
ist zum:
Unterbrechen des Stromflusses entlang des Stromflusswegs als Reaktion auf einen ersten
Zustand des ersten Signals; und
als Reaktion auf einen zweiten Zustand des ersten Signals:
Beginnen eines Sanftstartzeitraums, der einen Startzeitpunkt und einen Endzeitpunkt
aufweist;
Einschränken des Stromflusses entlang des Stromflusswegs auf eine variable eingeschränkte
Stromflussgeschwindigkeit, die von ungefähr einem Nullstromfluss zum Startzeitpunkt
bis zu einer uneingeschränkten Geschwindigkeit zum Endzeitpunkt reicht.
4. Stromsteueranordnung nach einem der Ansprüche 1 bis 3, wobei das zweite Signal das
erste Signal ist.
5. Stromsteueranordnung nach einem der Ansprüche 1 bis 4, wobei mindestens einer des
ersten Strombegrenzers und des zweiten Strombegrenzers eine Strombegrenzungskomponente
in dem Stromflussweg umfasst und aus einem eines Feldeffekttransistors, eines Bipolartransistors
mit isoliertem Gate oder einem Relais ausgewählt wird.
6. Stromsteueranordnung nach einem der Ansprüche 1 bis 5, wobei der erste Strombegrenzer
einen Feldeffekttransistor umfasst und wobei der zweite Strombegrenzer einen Feldeffekttransistor
umfasst.
7. Motorsteuersystem mit einer Sanftstartfunktion, umfassend:
eine Stromsteueranordnung nach einem der Ansprüche 1 bis 6;
einen elektrischen Eingang, der konfiguriert ist, um eine Eingangsspannung mit dem
elektrischen Stromflussweg zu verbinden;
eine Spannungsspeicheranordnung (142) in dem elektrischen Stromflussweg;
eine Motorsteuereinheit, die geeignet ist zum Empfangen eines elektrischen Stroms
von der Spannungsspeicheranordnung; und
einen Motor, der konfiguriert ist, um von der Motorsteuereinheit gesteuert zu werden.
8. Verfahren zum Sanftstarten einer elektrischen stromverbrauchenden Vorrichtung, wobei
das Verfahren umfasst:
Bereitstellen eines Motorsteuersystems, das umfasst:
eine Stromsteueranordnung, die eine integrierte elektrische Sanftstart- und Sicherheitsunterbrechungsvorrichtung
in einem elektrischen Stromflussweg (120) bereitstellt, wobei die Stromsteueranordnung
umfasst:
einen ersten Strombegrenzer (112) in dem elektrischen Stromflussweg (120), wobei der
erste Strombegrenzer (112) eine Schaltung umfasst, die konfiguriert ist, um einen
Stromfluss entlang des elektrischen Stromflusswegs (120) zwischen einem elektrischen
Eingang und einer Spannungsspeicheranordnung (142) verstellbar zu beschränken;
einen ersten Eingangsanschluss (113); und
einen zweiten Strombegrenzer (114) in dem elektrischen Stromflussweg (120), wobei
der zweite Strombegrenzer (114) geeignet ist, den elektrischen Stromflussweg (120)
zu unterbrechen; und
einen zweiten Eingangsanschluss (117);
Entgegenwirken gegen den Stromfluss in dem Stromflussweg durch den ersten Strombegrenzer
(112) und den zweiten Strombegrenzer (114);
Empfangen eines ersten Signals (130) an dem ersten Eingangsanschluss (113);
Empfangen eines zweiten Signals (132) an dem zweiten Eingangsanschluss (117);
Erlauben durch den zweiten Strombegrenzer (114) des Stromflusses in dem Stromflussweg
(120) als Reaktion auf das zweite Signal (132);
verstellbares Einschränken durch den ersten Strombegrenzer (112) des Stromflusses
entlang des Stromflusswegs (120) als Reaktion auf das erste Signal (130).
9. Verfahren nach Anspruch 8,
das außerdem umfasst:
Unterbrechen des Stromflusses entlang des Stromflusswegs als Reaktion auf einen ersten
Zustand des ersten Signals;
Beginnen eines Sanftstartzeitraums als Reaktion auf einen zweiten Zustand des ersten
Signals;
Einschränken, für die Dauer des Sanftstartzeitraums, des Stromflusses entlang des
Stromflusswegs auf eine eingeschränkte Geschwindigkeit, die größer als ein Nullstromfluss
und geringer als die maximale Strömungsgeschwindigkeit ist; und
Erlauben, nach dem Ablauf der Sanftstartzeit, des Stromflusses entlang des Stromflusswegs
mit einer uneingeschränkten Geschwindigkeit.
10. Verfahren nach Anspruch 8, das außerdem umfasst:
Unterbrechen des Stromflusses entlang des Stromflusswegs als Reaktion auf einen ersten
Zustand des ersten Signals;
Beginnen eines Sanftstartzeitraums, der einen Startzeitpunkt und einen Endzeitpunkt
aufweist, als Reaktion auf einen zweiten Zustand des ersten Signals;
Einschränken zum Startzeitpunkt des Stromflusses entlang des Stromflusswegs auf einen
ungefähr Nullstromfluss, und
Vergrößern, während des Sanftstartzeitraums, des Stromflusses entlang des Stromflusswegs
von dem ungefähr Nullstromfluss auf eine uneingeschränkte Geschwindigkeit zum Endzeitpunkt.
11. Verfahren nach einem der Ansprüche 8 bis 10, wobei das zweite Signal das erste Signal
ist.
12. Verfahren nach einem der Ansprüche 8 bis 11, wobei mindestens einer des ersten Strombegrenzers
und des zweiten Strombegrenzers eine Strombegrenzungskomponente in dem Stromflussweg
umfasst und aus einem eines Feldeffekttransistors, eines Bipolartransistors mit isoliertem
Gate oder einem Relais ausgewählt wird.
13. Verfahren nach einem der Ansprüche 8 bis 12, wobei der erste Strombegrenzer einen
Feldeffekttransistor umfasst und wobei der zweite Strombegrenzer einen Feldeffekttransistor
umfasst.
1. Ensemble de commande de courant qui fournit un appareil de démarrage graduel et d'interruption
de sécurité intégré, l'ensemble de commande de courant comprenant :
un chemin de flux de courant électrique (120) présentant un débit de flux de courant
maximum ;
un premier limiteur de courant (112) dans le chemin de flux de courant électrique
(120), le premier limiteur de courant (112) comprenant des circuits configurés pour
limiter de manière réglable le flux de courant le long du chemin de flux de courant
électrique (120) à un débit de flux inférieur au débit de flux de courant maximum
en réponse à la réception d'un premier signal (130) au niveau d'un premier port d'entrée
(113) ; et
un second limiteur de courant (114) dans le chemin de flux de courant électrique (120),
le second limiteur de courant (114) étant agencé pour interrompre le chemin de flux
de courant électrique en réponse à la réception d'un second signal (132) au niveau
d'un second port d'entrée (117).
2. Ensemble de commande de courant selon la revendication 1, dans lequel le premier limiteur
de courant est configuré en outre pour :
en réponse à un premier état du premier signal, interrompre le flux de courant le
long du chemin de flux de courant ; et
en réponse à un second état du premier signal :
lancer une période de temps de démarrage graduel ;
limiter le flux le long du chemin de flux de courant à un débit limité supérieur à
un flux de courant nul et inférieur au débit de flux de courant maximum pendant la
durée de la période de temps de démarrage graduel ; et,
autoriser un flux de courant le long du chemin de flux de courant à un débit non limité
à l'expiration du temps de démarrage graduel.
3. Ensemble de commande de courant selon la revendication 1, dans lequel le premier limiteur
de courant est configuré en outre pour :
en réponse à un premier état du premier signal, interrompre un flux de courant le
long du chemin de flux de courant ; et
en réponse à un second état du premier signal :
lancer une période de temps de démarrage graduel présentant un temps de début et un
temps de fin ;
limiter un flux de courant le long du chemin de flux de courant à un débit de flux
limité variable allant d'environ un flux de courant nul au temps de début à un débit
non limité au temps de fin.
4. Ensemble de commande de courant selon l'une quelconque des revendications 1 à 3, dans
lequel le second signal est le premier signal.
5. Ensemble de commande de courant selon l'une quelconque des revendications 1 à 4, dans
lequel au moins un du premier limiteur de courant et du second limiteur de courant
comprend un composant de limitation de courant dans le chemin de flux de courant et
est sélectionné parmi un transistor à effet de champ, un transistor bipolaire à grille
isolée, ou un relais.
6. Ensemble de commande de courant selon l'une quelconque des revendications 1 à 5, dans
lequel le premier limiteur de courant comprend un transistor à effet de champ et le
second limiteur de courant comprend un transistor à effet de champ.
7. Système de commande de moteur à fonction de démarrage graduel, comprenant :
un ensemble de commande de courant selon l'une quelconque des revendications 1 à 6
;
une entrée électrique, configurée pour connecter une tension d'entrée au chemin de
flux de courant électrique ;
un ensemble de stockage de tension (142) dans le chemin de flux de courant ;
un contrôleur de moteur agencé pour recevoir une puissance électrique depuis l'ensemble
de stockage de tension ; et
un moteur configuré pour être commandé par le contrôleur de moteur.
8. Procédé de démarrage graduel d'un appareil de consommation de courant électrique,
le procédé comprenant :
la fourniture d'un système de commande de moteur comprenant :
un ensemble de commande de courant qui fournit un appareil de démarrage graduel et
d'interruption de sécurité intégré dans un chemin de flux de courant électrique (120),
l'ensemble de commande de courant comprenant :
un premier limiteur de courant (112) dans le chemin de flux de courant électrique
(120), le premier limiteur de courant (112) comprenant des circuits configurés pour
limiter de manière réglable le flux de courant le long du chemin de flux de courant
électrique (120) entre une entrée électrique et un ensemble de stockage de tension
(1452), et un premier port d'entrée (113) ; et
un second limiteur de courant (114) dans le chemin de flux de courant électrique (120),
le second limiteur de courant (114) étant agencé pour interrompre le chemin de flux
de courant électrique (120), et un second port d'entrée (117);
la résistance, par le premier limiteur de courant (112) et le second limiteur de courant
(114), au flux de courant dans le chemin de flux de courant ;
la réception d'un premier signal (130) au niveau du premier port d'entrée (113) ;
la réception d'un second signal (132) au niveau du second port d'entrée (117) ;
l'autorisation, par le second limiteur de courant (114) en réponse au second signal
(132), d'un flux de courant dans le chemin de flux de courant (120) ; et,
la limitation réglable, par le premier limiteur de courant (112) en réponse au premier
signal (130), du flux de courant le long du chemin de flux de courant électrique (120).
9. Procédé selon la revendication 8, comprenant en outre :
l'interruption, en réponse à un premier état du premier signal, du flux de courant
le long du chemin de flux de courant ;
le lancement, en réponse à un second état du premier signal, d'une période de temps
de démarrage graduel ;
la limitation, pendant la durée de la période de temps de démarrage graduel, du flux
le long du chemin de flux de courant à un débit limité supérieur à un flux de courant
nul et inférieur au débit de flux de courant maximum ; et,
l'autorisation, à l'expiration du temps de démarrage graduel, d'un flux de courant
le long du chemin de flux de courant à un débit non limité.
10. Procédé selon la revendication 8, comprenant en outre :
l'interruption, en réponse à un premier état du premier signal, d'un flux de courant
le long du chemin de flux de courant ;
le lancement, en réponse à un second état du premier signal, d'une période de temps
de démarrage graduel présentant un temps de début et un temps de fin ;
la limitation, au temps de début, d'un flux de courant le long du chemin de flux de
courant à environ un flux de courant nul ; et, l'augmentation, durant la période de
démarrage graduel, d'un flux de courant le long du chemin de flux de courant d'environ
un flux de courant nul à un débit non limité au temps de fin.
11. Procédé selon l'une quelconque des revendications 8 à 10, dans lequel le second signal
est le premier signal.
12. Procédé selon l'une quelconque des revendications 8 à 11, dans lequel au moins un
du premier limiteur de courant et du second limiteur de courant comprend un composant
de limitation de courant dans le chemin de flux de courant et est sélectionné parmi
un transistor à effet de champ, un transistor bipolaire à grille isolée, ou un relais.
13. Procédé selon l'une quelconque des revendications 8 à 12, dans lequel le premier limiteur
de courant comprend un transistor à effet de champ et le second limiteur de courant
comprend un transistor à effet de champ.